An image identification and quality indication system for radiographic inspection includes a flexible substrate, for positioning on a surface of an object to be inspected, and a number of locators and image quality indicators arranged on the flexible substrate. Each locator is configured for indicating a position on the object's surface in a respective radiographic image (image). Each image quality indicator is configured to indicate an image quality of the respective image. An image identification and quality indication method for radiographic inspection includes positioning the flexible substrate on the object's surface, including aligning the locators with a number of visible features on object's surface. The method further includes forming at least one reference mark and image quality mark in each of a number of images of the object, using a locator and image quality indicator, respectively. Each reference mark correlates the respective image with a position on the object.
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1. An image identification and quality indication system for radiographic inspection, said system comprising:
a flexible substrate for positioning on a surface of an object to be inspected; a plurality of locators arranged on said flexible substrate, each of said locators being configured for indicating at least one position on the surface of the object in a respective one of a plurality of radiographic images; and a plurality of image quality indicators arranged on said flexible substrate, each of said image quality indicators being configured to indicate an image quality of the respective radiographic image.
10. An imaging system comprising:
an x-ray source; a digital x-ray detector positioned with an object to be inspected disposed between said digital x-ray detector and said x-ray source, said digital x-ray detector being configured to be movable on a path along the object and being configured to obtain a plurality of digital images of the object along the path; a flexible substrate for positioning on a surface of the object to be inspected; a plurality of locators arranged on said flexible substrate, each of said locators being configured for indicating at least one position on the surface of the object in a respective one of the digital images; and a plurality of image quality indicators arranged on said flexible substrate, each of said image quality indicators being configured to indicate an image quality of the respective digital image.
19. An image identification and quality indication method for radiographic inspection, said method comprising:
positioning a flexible substrate on a surface of an object to be inspected, said positioning including aligning a plurality of locators on the flexible substrate with a plurality of visible features on the surface of the object; forming at least one reference mark in each of a plurality of radiographic images of the object, said formation of each of the reference marks comprising using a respective one of the locators, and each of the reference marks being adapted to correlate the respective radiographic image with a respective position on the object; and forming at least one image quality mark in each of the radiographic images, said formation of each of the image quality marks comprising using a respective one of a plurality of image quality indicators arranged on the flexible substrate.
27. An inspection method comprising:
positioning a flexible substrate on a surface of an object to be inspected, said positioning comprising aligning a plurality of locators on the flexible substrate with a plurality of visible features on the surface of the object; imaging a portion of the object, said imaging comprising activating an x-ray source and collecting an image with a digital x-ray detector, said imaging further comprising: forming at least one reference mark in the image using a respective one of the locators, each of the reference marks being adapted to correlate the image with a respective position on the object; and forming at least one image quality mark in the image using a respective one of a plurality of image quality indicators arranged on the flexible substrate; and moving the digital x-ray detector to a subsequent detector position, wherein said moving the digital x-ray detector and said imaging are repeated for a plurality of detector positions to obtain a plurality of images of the object. 2. The image identification and quality indication system of
3. The image identification and quality indication system of
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9. The image identification and quality indication system of
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12. The imaging system of
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25. The image identification and quality indication method of
inspecting each of the image quality marks using a computer to determine whether the image quality of the respective radiographic image satisfies a predetermined standard; and recording a position of each of the radiographic images and whether the image quality is satisfactory or unsatisfactory for each of the radiographic images, wherein said recording is performed using the computer. 26. The image identification and quality indication method of
28. The inspection method of
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33. The inspection method of
inspecting each of the image quality marks using a computer to determine whether the image quality of the respective image satisfies a predetermined standard; and recording a position of each of the images and whether the image quality is satisfactory or unsatisfactory for each of the images, wherein said recording is performed using the computer.
34. The inspection method of
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The invention relates generally to digital imaging, such as digital radiography, and more particularly to image identification and quality indication for imaging.
High-speed digital radiography for inspection of large objects, such as aircraft fuselage frames, requires quick acquisition of several thousand images. Because of the large size of the objects under inspection, accurate correlation of each image with its position on the object is desirable, to differentiate the image from other images which are similar in appearance. This referencing of each image to its respective position on the object is desirable for locating defects in the object, using the images.
In addition to image identification for accurate location of defects within the object undergoing inspection, it would be desirable to simultaneously determine the quality of the images. It would further be desirable for the image identification and quality indication to facilitate automated determination and recording of the image quality and location.
Briefly, in accordance with one embodiment of the present invention, an image identification and quality indication system for radiographic inspection is disclosed. The image identification and quality indication system includes a flexible substrate, for positioning on a surface of an object to be inspected, and a number of locators arranged on the flexible substrate. Each locator is configured for indicating at least one position on the surface of the object in a respective one of a number of radiographic images. The image identification and quality indication system further includes a number of image quality indicators arranged on the flexible substrate. Each image quality indicator is configured to indicate an image quality of the respective radiographic image.
An imaging system embodiment is also disclosed. The imaging system includes an x-ray source and a digital x-ray detector positioned with the object to be inspected disposed between the digital x-ray detector and the x-ray source. The digital x-ray detector is configured to be movable on a path along the object and to obtain a number of digital images of the object along the path. The inspection system further includes the flexible substrate, for positioning on a surface of the object to be inspected, and a number of locators and image quality indicators arranged on the flexible substrate.
An image identification and quality indication method embodiment, for radiographic inspection, is also disclosed. The image identification and quality indication method includes positioning the flexible substrate on a surface of the object to be inspected. The positioning includes aligning a number of locators on the flexible substrate with a number of visible features on the surface of the object. The method further includes forming at least one reference mark in each of a number of radiographic images of the object, using a respective locator. Each reference mark is adapted to correlate the respective radiographic image with a respective position on the object. The method further includes forming at least one image quality mark in each radiographic image, using a respective image quality indicator arranged on the flexible substrate.
An inspection method embodiment is also disclosed. The inspection method includes positioning the flexible substrate on a surface of the object to be inspected, including aligning a number of locators on the flexible substrate with a number of visible features on the surface of the object. The inspection method further includes imaging a portion of the object. The imaging includes activating the x-ray source and collecting an image with the digital x-ray detector. The imaging further includes forming at least one reference mark in the image using a respective locator, each of the reference marks being adapted to correlate the image with a respective position on the object. The imaging further includes forming at least one image quality mark in the image using a respective image quality indicator arranged on the flexible substrate. The inspection method further includes moving the digital x-ray detector to a subsequent detector position. The moving of the digital x-ray detector and the imaging steps are repeated for a number of detector positions to obtain a number of images of the object.
These and other features, aspects, and advantages of the present invention will become better understood when the following detailed description is read with reference to the accompanying drawings in which like characters represent like parts throughout the drawings, wherein:
An image identification and quality indication system 10 for radiographic inspection is described with reference to
For the particular embodiments illustrated in
According to a particular embodiment, flexible substrate 20 is substantially transparent to visible light and has a low x-ray attenuation. By "substantially transparent to visible light," it is meant that flexible substrate 20 transmits a sufficient portion of visible light to allow the operator to see through flexible substrate 20, such that the operator can see the visible features (not shown), of the object 30 to be inspected, through flexible substrate 20 for alignment with visible markings 23. By "low x-ray attenuation," it is meant that flexible substrate 20 transmits a sufficient fraction of incident x-rays that flexible substrate 20 does not interfere with x-ray imaging of the object 30, and more particularly is essentially invisible in x-ray image 36. Exemplary flexible substrates 20 comprise plastic, polyester films such as the polyester film sold under the trade name Mylar®, polyimide films such as the polyimide film sold under the trade name Kapton®, or woven materials such as cloth. An exemplary thickness for flexible substrate 20 is within a range of about ten to about 20 mils. However, the desired thickness of flexible substrate 20 varies with the material. Generally, the lower limit on the thickness is determined to reduce tearing, and the upper limit is constrained by weight, flexibility, and cost considerations.
Exemplary visible markings 23 are formed using ink and paint and are not visible in images 36 and examples include dots 23, as shown in
According to a particular embodiment, each image quality indicator 24 is a penetrameter (also indicated by reference numeral 24), which is opaque to x-ray radiation. Penetrameters 24 are well known and hence will not be described in detail. Exemplary penetrameters 24 are formed of the same or a similar material as the object 30 to be inspected. The exemplary penetrameter 24 depicted in
To produce reference marks 37 and image quality marks 35 for each of the radiographic images 36 while facilitating a set of clear radiographic images 36 of object 30, according to a particular embodiment, each locator 22 and image quality indicator 24 is positioned on flexible substrate 20 to lie within a boundary 38 of the respective radiographic image 36 and outside a main portion 39 of the respective radiographic image. Two neighboring exemplary radiographic images 36 are depicted in FIG. 3. As schematically shown, reference marks 37 and image quality marks 35 are formed within image boundary 38 but outside the main portion 39 of the images 36. As reference and image quality marks 37, 35 are formed using image locators 25 and image quality indicators 24, these elements of image identification and quality indication system 10 are correspondingly positioned to lie within boundary 38 but outside main portion 39. It should be noted that although reference and image quality marks 37,35 are shown below main portion 39 of radiographic images 36, reference and image quality marks 37, 35 may also be above or to the side of the main portions 39 of radiographic images 36.
In order to inspect a large area of a large object 30, for the embodiment shown in
An imaging system 40 embodiment is described with respect to
As discussed above with respect to image identification and quality indication system 10, according to a particular embodiment of imaging system 40, each locator 22 includes at least one visible marking 23 and at least one image locator 25, as shown for example in FIG. 2. Also as discussed above, according to a particular embodiment of imaging system 40, each locator 22 and image quality indicator 24 is positioned on flexible substrate 20 to lie within boundary 38 of the respective radiographic image 36 and outside main portion 39 of the respective radiographic image, as indicated for example in FIG. 3. According to particular embodiments of imaging system 40, locators 22 and image quality indicators 24 are arranged in a two dimensional or a linear array, as shown for example in
For the embodiment illustrated in
According to a particular embodiment, computer 50 is further configured to apply optical character recognition to a number of reference marks 37 to determine the position 34 of each of the digital images 36. Exemplary reference marks 37 are illustrated in FIG. 3 and are formed in the digital images using locators 22, and more particularly using image locators 25. Beneficially, applying optical character recognition to reference marks 37 facilitates automatic recording by position 34 of the digital images 36 with acceptable image quality and of the digital images 36 that need to be retaken.
An image identification and quality indication method embodiment of the invention, for radiographic inspection, is described with respect to
For the particular embodiment shown in
Although the application of image identification and quality indication method shown in
According to one embodiment, the image identification and quality indication method further includes visually inspecting each of the image quality marks 35 to determine whether the image quality of the respective radiographic image 36 is satisfactory. Although the image quality marks may be visually inspected, it is desirable to automate the inspection process, for both time and accuracy considerations. Accordingly, for the embodiment shown in
An inspection method embodiment of the invention is described with reference to
While only certain features of the invention have been illustrated and described herein, many modifications and changes will occur to those skilled in the art. It is, therefore, to be understood that the appended claims are intended to cover all such modifications and changes as fall within the true spirit of the invention.
Hopple, Michael Robert, Mohr, Gregory Alan, Dixon, Elizabeth Lokenberg, Matula, August David
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